中文

Stiffness Optimization for Concentrated Bending in Magnetically Actuated Catheters: Maintaining Steerability under Gradient Stiffness

机器人学 2026-05-26 v1

摘要

Achieving both efficient pushability (propulsion transmission) and proximally concentrated bending for steerability is challenging for magnetically actuated soft catheters: higher axial/bending stiffness improves force transmission but reduces steerability, whereas lower stiffness enables large, proximally concentrated bending yet increases kinking/buckling risk under compressive push loads. To address this trade-off, we propose a stiffness-optimized multi-segment magnetically actuated catheter (SO-MAC) that integrates a decoupled steering-advancement mechanism with a gradient-stiffness architecture. The SO-MAC concentrates bending about a stable proximal pivot during advancement while the distal section passively self-straightens to transmit propulsion, aided by the optimized stiffness distribution and elastic recovery of the spring backbone against friction-induced kinking/buckling. Over 01800{-}180^{\circ} combined steering and advancement, the pivot remained stable and the distal tip advanced near-straight toward the target direction. A 1.5 mm-diameter SO-MAC achieved up to 180180^{\circ} steering with a 3 mm bending radius at its 10 mm tip, with an average shape error of 1.39±0.561.39 \pm 0.56 mm and a steering-pivot error of 0.35±0.100.35 \pm 0.10 mm. Visual feedback control in a bronchial phantom further confirmed robust navigation through highly curved, bifurcating paths.

引用

@article{arxiv.2605.25005,
  title  = {Stiffness Optimization for Concentrated Bending in Magnetically Actuated Catheters: Maintaining Steerability under Gradient Stiffness},
  author = {Jiewen Tan and Junnan Xue and Shing Shin Cheng and Shuang Song and Erli Lyu and Jiaole Wang},
  journal= {arXiv preprint arXiv:2605.25005},
  year   = {2026}
}